纳米
等级制度
纳米-
材料科学
接触角
粘附
固体表面
纳米技术
防水剂
复合材料
莲花效应
表面能
化学
化学物理
经济
有机化学
原材料
市场经济
作者
Yewang Su,Baohua Ji,Kai Zhang,Huajian Gao,Yonggang Huang,Keh‐Chih Hwang
出处
期刊:Langmuir
[American Chemical Society]
日期:2010-01-21
卷期号:26 (7): 4984-4989
被引量:215
摘要
Water-repellent biological systems such as lotus leaves and water strider's legs exhibit two-level hierarchical surface structures with the smallest characteristic size on the order of a few hundreds nanometers. Here we show that such nano to micro structural hierarchy is crucial for a superhydrophobic and water-repellent surface. The first level structure at the scale of a few hundred nanometers allows the surface to sustain the highest pressure found in the natural environment of plants and insects in order to maintain a stable Cassie state. The second level structure leads to dramatic reduction in contact area, hence minimizing adhesion between water and the solid surface. The two level hierarchy further stabilizes the superhydrophobic state by enlarging the energy difference between the Cassie and the Wenzel states. The stability of Cassie state at the nanostructural scale also allows the higher level structures to restore superhydrophobicity easily after the impact of a rainfall.
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